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I would like to know how to load an image in php using the variable below:

<?php 

foreach (glob('cam/*.jpg') as $f) {
    # store the image name
    $list[] = $f;
}

sort($list);             # sort is oldest to newest,

echo array_pop($list);   # Newest
?>

How do I load the image file from array_pop($list)?

  • Load how? What does that mean? – PeeHaa Nov 4 '16 at 11:34
  • 1
    <img src="YOUR_SRC_HERE"> – u_mulder Nov 4 '16 at 11:35
  • you need to set the correct headers if you want to output an image to the browser. stackoverflow.com/questions/2633908/… – Cagy79 Nov 4 '16 at 11:36
  • This is HTML 101 stuff. – Funk Forty Niner Nov 4 '16 at 11:42
  • This code checks that the last image jpg added to a folder. The file name appears on the site such as cam / CAM2016110312122101.jpg Whenever a camera plays a new image in the folder, the name of the jpg file is shown on the site. I wanted to get the name of this file and open the image on the site. Html use: <Div align = "center"> <img src = "site.com.br/file.jpg"> </ div> As you would in PHP using the variable array_pop ($ list) and taking the first element of this array (latest image). – Edgard de Oliveira Nov 4 '16 at 11:48
0
<?php 

foreach (glob('cam/*.jpg') as $f) {
    # store the image name
    $list[] = $f;
}

sort($list);                    # sort is oldest to newest,

echo '<img src="'.array_pop($list).'">';

?>

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